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与NEDDylation相关基因的膀胱癌预后分析

Prognostic analysis of bladder cancer with neddylation-related genes.

作者信息

Xiaolong Huang, Min Deng, Sizhou Zhang, Daorong Hu, Juncheng Pan, Yanjian Wang, Hong Li Jie Gu, Ji Zheng, Qingjian Wu

机构信息

, Department of Urology, the Second Affiliated Hospital, Third Military Medical University (Army Medical University), Xinqiao Road No.83, Chongqing, 400037, P. R. China.

Department of Urology, People's Hospital of Chongqing Hechuan, Chongqing, 401520, PR China.

出版信息

Hereditas. 2025 Jun 16;162(1):105. doi: 10.1186/s41065-025-00463-y.

Abstract

BACKGROUND

Previous studies have demonstrated a close association between neddylation modifications and tumor progression as well as alterations in the microenvironment. This study aimed to explore the role of neddylation in bladder cancer (BLCA) progression and its prognostic significance.

METHODS

Gene expression data from the TCGA database were analyzed to identify neddylation gene modules using the limma software package and weighted gene co-expression network analysis (WGCNA). Prognostic models based on neddylation-related genes were subsequently developed through LASSO and Cox regression analyses. Additionally, a protein-protein interaction (PPI) network, gene set enrichment analysis (GSEA), and BLCA single-cell sequencing data were utilized to explore the functional roles of hub genes in BLCA and their impact on biological pathways. The expression of these hub genes was further validated in clinical samples via RT-qPCR.

RESULTS

WGCNA analysis revealed 1412 neddylation-related hub genes. LASSO and Cox regression analyses subsequently identified six key genes: CUL1, PUM2, UBE2D3, HIF3A, COPS2, and DDB1. Transcriptomic data and RT-qPCR findings indicated that PUM2 and HIF3A exhibited high expression levels in normal tissues, while DDB1 showed increased expression in tumor tissues; no significant changes were observed for CUL1, COPS2, and UBE2D3. By integrating these gene expressions with significant clinical features, a prognostic model was constructed that demonstrated excellent diagnostic efficiency (AUC: 0.793 at 1 year, 0.792 at 3 years, and 0.773 at 5 years). In addition, single cell sequencing highlighted the potential role of these genes in modulating immune responses and mediating interactions between tumor cells and immune cells. GSEA also suggested that DDB1 may play a crucial role in orchestrating key biological processes associated with BLCA, particularly in activating apoptotic signaling pathways.

CONCLUSION

The six neddylation-related genes (CUL1, PUM2, UBE2D3, HIF3A, COPS2, and DDB1) emerge as potential independent indicators of survival in patients with BLCA, and the constructed survival models exhibit significant diagnostic efficacy.

摘要

背景

先前的研究表明,NEDDylation修饰与肿瘤进展以及微环境改变之间存在密切关联。本研究旨在探讨NEDDylation在膀胱癌(BLCA)进展中的作用及其预后意义。

方法

使用limma软件包和加权基因共表达网络分析(WGCNA)对来自TCGA数据库的基因表达数据进行分析,以识别NEDDylation基因模块。随后通过LASSO和Cox回归分析建立基于NEDDylation相关基因的预后模型。此外,利用蛋白质-蛋白质相互作用(PPI)网络、基因集富集分析(GSEA)和BLCA单细胞测序数据来探讨枢纽基因在BLCA中的功能作用及其对生物途径的影响。通过RT-qPCR在临床样本中进一步验证这些枢纽基因的表达。

结果

WGCNA分析揭示了1412个与NEDDylation相关的枢纽基因。LASSO和Cox回归分析随后确定了六个关键基因:CUL1、PUM2、UBE2D3、HIF3A、COPS2和DDB1。转录组数据和RT-qPCR结果表明,PUM2和HIF3A在正常组织中表达水平较高,而DDB1在肿瘤组织中表达增加;CUL1、COPS2和UBE2D3未观察到显著变化。通过将这些基因表达与显著的临床特征相结合,构建了一个预后模型,该模型显示出优异的诊断效率(1年时AUC为0.793,3年时为0.792,5年时为0.773)。此外,单细胞测序突出了这些基因在调节免疫反应和介导肿瘤细胞与免疫细胞之间相互作用中的潜在作用。GSEA还表明,DDB1可能在协调与BLCA相关的关键生物学过程中发挥关键作用,特别是在激活凋亡信号通路方面。

结论

六个与NEDDylation相关的基因(CUL1、PUM2、UBE2D3、HIF3A、COPS2和DDB1)成为BLCA患者生存的潜在独立指标,构建的生存模型具有显著的诊断效力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5dc6/12172356/ecc24868055b/41065_2025_463_Fig1_HTML.jpg

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